EP0761871B1 - Kraft recovery boiler furnace - Google Patents
Kraft recovery boiler furnace Download PDFInfo
- Publication number
- EP0761871B1 EP0761871B1 EP96306596A EP96306596A EP0761871B1 EP 0761871 B1 EP0761871 B1 EP 0761871B1 EP 96306596 A EP96306596 A EP 96306596A EP 96306596 A EP96306596 A EP 96306596A EP 0761871 B1 EP0761871 B1 EP 0761871B1
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- EP
- European Patent Office
- Prior art keywords
- air
- furnace
- ports
- black liquor
- injection
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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Classifications
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- D—TEXTILES; PAPER
- D21—PAPER-MAKING; PRODUCTION OF CELLULOSE
- D21C—PRODUCTION OF CELLULOSE BY REMOVING NON-CELLULOSE SUBSTANCES FROM CELLULOSE-CONTAINING MATERIALS; REGENERATION OF PULPING LIQUORS; APPARATUS THEREFOR
- D21C11/00—Regeneration of pulp liquors or effluent waste waters
- D21C11/12—Combustion of pulp liquors
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F22—STEAM GENERATION
- F22B—METHODS OF STEAM GENERATION; STEAM BOILERS
- F22B31/00—Modifications of boiler construction, or of tube systems, dependent on installation of combustion apparatus; Arrangements of dispositions of combustion apparatus
- F22B31/04—Heat supply by installation of two or more combustion apparatus, e.g. of separate combustion apparatus for the boiler and the superheater respectively
- F22B31/045—Steam generators specially adapted for burning refuse
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F23—COMBUSTION APPARATUS; COMBUSTION PROCESSES
- F23C—METHODS OR APPARATUS FOR COMBUSTION USING FLUID FUEL OR SOLID FUEL SUSPENDED IN A CARRIER GAS OR AIR
- F23C5/00—Disposition of burners with respect to the combustion chamber or to one another; Mounting of burners in combustion apparatus
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F23—COMBUSTION APPARATUS; COMBUSTION PROCESSES
- F23C—METHODS OR APPARATUS FOR COMBUSTION USING FLUID FUEL OR SOLID FUEL SUSPENDED IN A CARRIER GAS OR AIR
- F23C7/00—Combustion apparatus characterised by arrangements for air supply
- F23C7/02—Disposition of air supply not passing through burner
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F23—COMBUSTION APPARATUS; COMBUSTION PROCESSES
- F23G—CREMATION FURNACES; CONSUMING WASTE PRODUCTS BY COMBUSTION
- F23G7/00—Incinerators or other apparatus for consuming industrial waste, e.g. chemicals
- F23G7/04—Incinerators or other apparatus for consuming industrial waste, e.g. chemicals of waste liquors, e.g. sulfite liquors
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E20/00—Combustion technologies with mitigation potential
- Y02E20/12—Heat utilisation in combustion or incineration of waste
Definitions
- the present invention relates to kraft recovery boiler furnaces.
- recovery boilers are used to burn the liquor produced in the kraft pulp making process.
- the function of a recovery boiler is to dispose of black liquor by burning the organic residue, generating steam, and converting the inorganic materials into a useful form.
- the current practice for introducing combustion air into the kraft recovery boilers involves injecting the air at two or more elevations in the furnace of the boiler. At the lowest elevation, air is injected through ports in all four walls.
- One of the major operational problems in kraft recovery boilers is the formation of deposits on the heat transfer surfaces in the upper part of the boiler. The most troublesome deposits occur in the superheater and steam generator. These deposits are formed mainly by particles that originate from the entrainment of some of the liquor spray particles in the air and flue gas stream.
- the liquor spray particles fall towards the bottom of the furnace, they swell and lose weight, becoming less dense and easier to entrain.
- the most sensitive area for entrainment is at the char bed and the primary air entry level of the furnace.
- a second critical area is where there is a secondary level of air entry just above the char bed.
- the particles that are entrained are carried upward into the region above the black liquor injection nozzles by the upwardly flowing gases and are destined to be carried out of the furnace by the furnace exit gas or to be deposited in the superheater and steam generator.
- pulp mills are integrally linked to the capacity of its recovery boiler.
- pulp mills have been increasing their level of production through improved process management and mill upgrades. These improvements are pushing recovery boiler performance requirements beyond their original design capacity. As a result, recovery boilers limit pulp mill output in many cases.
- Almost all recovery boilers include three levels of combustion air known as primary, secondary and tertiary air as described in WO-A-92/16688. These air levels have different functions.
- the primary air is located at the lowest elevation in the furnace and supplies the air to burn the char on the surface of the char bed.
- the char is formed as liquor spray particles burn in the furnace.
- the char is partially burned in flight, as it falls to the bottom of the furnace, but the last part of the carbon in the char is burned out on top of the char bed that covers the bottom of the furnace.
- the primary air flow provides a bed geometry that allows recovered molten chemicals a suitable path for egress along the perimeter of the boiler and to the smelt outlet spouts.
- the floor of the boiler is sometimes sloped to facilitate this chemical removal.
- Secondary air enters the boiler above the primary air and below the black liquor injection nozzles.
- the secondary air assists in shaping the top of the char bed and supplies air to burn the combustible gases which rise from the bed. If the secondary air flow is too high, the flue gas resulting from the combustion of the volatiles will carry liquor droplets to the upper furnace plugging the boiler unit.
- Tertiary air is introduced to the boiler at an elevation above the black liquor injection guns and is used principally to burn the volatiles that are driven from the black liquor droplets as they pyrolyze and dry.
- WO-A-95/35409 is another document describing three horizontal levels of air. It proposes a constriction at a certain height in the furnace chamber.
- WO-A-94/12829 rejects the approach of three horizontal levels, and instead proposes that the gas flow in the furnace is substantially all in a horizontal direction.
- the black liquor injection guns inject the black liquor into the furnace in a downwardly inclined direction.
- the injection guns employ a splash plate which is oriented to cause the solid particles impinging the plate to flow downwardly in the furnace.
- a kraft recovery boiler furnace as described in claim 1 comprising: a furnace chamber having four walls, a char bed, a plurality of black liquor injection guns on at least two of the walls of the furnace chamber for injecting droplets of black liquor into the furnace, and a plurality of primary air injection ports located at a lower elevation in the walls of said furnace for supplying primary air which burns char on the surface of the char bed, secondary air injection ports located between the primary air injection ports and the black liquor injection guns, the secondary air injection ports supplying secondary air which assists in shaping the top of the char bed and supplying air to burn combustible gases which rise from the char bed, and tertiary ports located at an elevation above the black liquor injection guns, the tertiary air injection ports supplying tertiary air principally to burn volatiles, the primary air ports and secondary air ports being vertically spaced from one another by areas in the furnace in which no air is introduced into the furnace: an injection site combustion zone is defined surrounding
- the invention provides, in accordance with a second and alternative aspect thereof as described in claim 10, a method of operating a Kraft recovery boiler furnace, the furnace comprising a furnace chamber having four walls, a char bed, a plurality of black liquor injection guns on at least two of the walls of the furnace chamber for injecting droplets of black liquor into the furnace, and a plurality of primary air injections ports located at a lower elevation in the walls of said furnace for supplying primary air which burns char on the surface of the char bed, secondary air injection ports located between the primary air injection ports and the black liquor injection guns, the secondary air injection ports supplying secondary air which assists in shaping the top of the char bed and supplying air to burn combustible gases which rise from the char bed, and tertiary ports located at an elevation above the black liquor injections guns, the tertiary air injection ports supplying tertiary air principally to burn the volatiles, the primary air ports and secondary air ports being vertically spaced from one another by areas in the furnace in which no air is introduced into
- the term "quaternary air” is used herein to describe a new level of air introduction which results in increased combustion at substantially the level of the injection guns. Air previously introduced through the primary, secondary and/or tertiary air injection ports is, in part, redirected to the quaternary air injection sites. A zone of increased or intensified combustion is established around the black liquor injection guns. This zone is referred to herein as the “injection site combustion zone” and it generally extends a distance up to 4 feet (1.2192m) below and up to about 4 to 6 feet (1.2192 to 1.8288m) above the injection guns and more specifically from about 2 feet (0.6096m) below to about 4 feet (1.2192m) above the black liquor injection guns.
- the quaternary air ports will usually be located in this zone, but in some cases they may be located just above this zone if the air is directed downwardly into the zone.
- the injection site combustion zone is at an intermediate location to the combustion zones conventionally supplied by the secondary and tertiary air ports. In this zone, the quaternary air supports efficient combustion of the combustible gases driven from the drying black liquor droplets without entraining solid particles.
- a black liquor recovery unit designated as 10, includes a furnace chamber 12 having vertical front and rear walls 14, 15 and vertical side walls 16 and at the lower end an inclined hearth 18.
- Molten smelt removal spouts 20 are positioned at the lower end of the hearth for the discharge of molten chemical ash into a smelt collection tank 22.
- the so-called black ash expands to a light low density particle which falls to the hearth floor to form the char bed.
- Incomplete combustion in the char bed causes carbon and carbon monoxide to act as reducing agents, thus converting sulfate and thiosulfate to sulfide.
- the heat is sufficient to melt the sodium salts, which filter through the char bed to the floor of the furnace.
- the smelt then flows by gravity through the water cooled spouts 20 to the smelt collection tank 22.
- the walls 14, 15, 16 are cooled by rows of water tubes 24 extending over the entire surface of the walls.
- the tubes 24 may also extend through the floor, the hearth, and the roof of the furnace.
- the steam generator 38 generally comprises a tube screen 40, a super heater section 42, a boiler section 44 and a boiler outlet 46.
- the steam generator tubes are used for the generation of superheated steam.
- black liquor injection guns 26 are mounted in each of the four furnace walls and are inclined downwardly so as to inject the black liquor into the furnace in a downward direction.
- Each of the injection guns 26 preferably includes a splash plate 28 attached to the spout of the injection guns oriented to cause the solid particles impinging the plate to flow downwardly into the furnace. While the furnace is illustrated with an injection gun in each of the furnace walls, those skilled in the art will appreciate that embodiments are also possible in which there is more than one gun present in each wall or in which there is one gun present in each of two opposing walls and no gun or a different number of guns present in the other walls.
- An injection site combustion zone 50 is created in the furnace 12. Air is introduced into the furnace through four sets of ports designated from the bottom upward as primary 30, secondary 32, quaternary 34, and tertiary 36 air ports. As can be seen in Fig. 1A, the injection guns 26 and air ports 30, 32, 34, 36 all extend through openings or bent tube ports defined by boiler tubes 24a and 24b.
- the air ports are supplied with combustion air by wind boxes which are not shown but are essentially large box like ducts that are mounted on and surround the outside wall of the combustion chamber. Pressurized air flow is provided to the wind boxes by a fan.
- the amount of air supplied to the air ports can be regulated by dampers.
- each set of air ports will be supplied from a separate wind box and fan but constructions are also feasible in which two or more sets of air ports are supplied from a common wind box.
- the air ports are positioned and operated or dampened to reduce the formation of deposits on the heat transfer surfaces and especially the superheater in the upper part of the boiler by minimizing gas velocity extremes including the chimney effect.
- the primary air ports 30 are located conventionally a few feet (about 2 to 4 feet - 0.6096 to 1.2192m) above the hearth 18 and extend around the four walls to provide a large portion of the combustion air requirement.
- the primary air ports 30 also provide an air flow geometry that allows the formation of the char bed such that the molten smelt has a suitable path for egress along the perimeter of the hearth 18 to the smelt outlet spouts 20.
- the primary air ports are operated in a conventional manner.
- the secondary air ports 32 are positioned conventionally about 6 to 8 feet (1.8288 to 2.4384m) above the primary air 30 and about 8 feet (2.4384m) below the injection guns 26, and extend around the four walls of the furnace.
- the secondary air ports are operated to shape the top of the char bed and burn combustible gases which rise from the char bed in a conventional manner.
- the amount of air supplied to the furnace by means of the secondary air ports can be reduced. Typically, 18 to 25% of the total air requirement is injected through the secondary air ports when using quaternary air introduction as contrasted with flows of up to 40% when quaternary air ports are not used.
- Quaternary air ports 34 are preferably positioned substantially at the same level as or above the injection guns 26 so as to supply air directly to zone 50.
- the number of quaternary air ports can vary but there will typically be one port located on each side of each of the black liquor injection guns.
- the air supplied by the quaternary air ports provides efficient mixing and combustion within the injection site combustion zone 50 of the boiler furnace 12.
- the quaternary air location is selected to concentrate the air more closely to where the fuel is located and provide better mixing and combustion, thus producing a more efficient burn in the combustion chamber, but without or with less particle entrainment. It is preferred that two quaternary air ports 34 are positioned adjacent to each side of each injection gun 26.
- the quaternary air ports will be positioned a distance to the side of each gun of about 2 to 10 feet (0.6096 to 3.048m).
- the quaternary air ports 34 are positioned at substantially the same level as the injection guns 26, but the position of the quaternary air injection ports can range from a distance of up to 5 feet (1.524m) above the guns to a distance no more than 0 to 4 feet (0 to 1.2192m) below the guns.
- the quaternary air injection ports are located at the same level as or at a higher level than the black liquor guns. The height of the quaternary air ports will depend on the design of the air ports and the injection guns.
- the quaternary air ports can be located a small distance below the guns without producing particle entrainment. While the quaternary air ports are typically located in the injection site combustion zone, if the air ports are designed to inject the air downwardly into the injection site combustion zone, they can be located above the zone and direct air downwardly into the zone.
- the function of the quaternary air ports is not to be confused with the function of the tertiary air ports which are located a greater distance above the injection guns than the quaternary air ports. It is believed that air injected through the quaternary air ports reacts more efficiently with the gaseous combustibles which are released from the black liquor as it burns because the quaternary air is supplied at a point at which the combustibles are more highly concentrated. By contrast, at the conventional level for tertiary air, the combustibles are believed to be diluted with noncombustible gases. However, there may be other theories for the improved reaction.
- Tertiary air ports 36 are positioned about 10 to 14 feet (3.048 to 4.2672m) above the injection guns 26. In Fig. 1 they are located on the front and rear walls 14, 15 of the furnace but they could also be located on the side walls. Tertiary air is used principally to burn volatiles that are driven off the black liquor droplets, sprayed from the injection guns 26, as the liquor is pyrolyzed and dried. About 30 to 40% of the total air requirement is injected through the combined tertiary and quaternary air ports. Typically, about 15% of the total air is injected through the tertiary air ports and about 15 to 30% of the total air is injected through the quaternary air ports.
- At least 30% ot the total air flow may be injected at or above the black liquor guns.
- This relocation or reallocation of the air flow is advantageous because it reduces the amount of oxygen at the lower elevations of the boiler where chemical reduction is favoured and increases it in the upper portions of the boiler where oxidation is desired. While such flow rates may have previously been achieved through increased tertiary air introduction without quaternary air introduction, it was probably not as efficient and involved more excess air than quaternary air introduction as described herein.
- the black liquor injection guns are preferably equipped with a splash plate which directs the black liquor droplets downward.
- the injection guns 26 and angle of the splash plate are selected to produce a downward particle flow and to minimize particle entrainment. Combustion of the black liquor is accompanied by a volume change caused by gas expansion. This expansion can lead to particle entrainment.
- the splash plates appear to be very effective in preventing entrainment in the presence of the quaternary air.
- the black liquor is supplied at a concentration of about 65 to 80% solids.
- the quaternary air ports 34 affords the opportunity to reduce secondary air 32 by performing some of the secondary air functions at the quaternary air level. In some cases it has been possible to block approximately seventy percent of the secondary air dampers.
- the secondary air dampers are arranged as shown in Fig. 1. Secondary air dampers marked A are closed, secondary air dampers marked B are open, and secondary air dampers marked C are 50% open.
- the operation of the furnace is as follows:
- the black liquor is fed through the injection guns at a rate of about 275 US gal/min (1041 litres/min) and is introduced at concentrations of about 70% solids.
- the primary air is introduced through primary air ducts on each of the front and rear furnace walls 14,15 and on each of the side walls 16.
- the primary air is fed at a rate of 45% total air flow.
- the secondary air is introduced through the secondary air ducts on each of the furnace walls as described above.
- the secondary air is fed at a rate of 25% of total air.
- the quaternary air is introduced through two quaternary air ducts on each side of the black liquor injection guns, at a rate of about 15% of total air.
- the quaternary air flow rate will typically vary from 15 to 35% of total air.
- the tertiary air can be introduced through tertiary air ducts on both the front and rear walls of the furnace, at a rate of 15 to 30% of total air which is sufficient to complete combustion of the gases released from the pyrolyzing liquor.
- Figs. 2-6 are operating charts respectively showing induced draft fan speed, primary air flow rate, secondary air flow rate, combined tertiary and quaternary air flow rate and total reduced sulfur for a boiler which was initially operated without quaternary air and subsequently with quaternary air.
- the boiler is a Babcock and Wilcox boiler having a design pressure of 1625 psig (1.120 x 10 7 N/m 2 gauge) and a designed liquid firing rate of 2.4 million pounds (1.089 x 10 6 Kg) per day dry solids operating at a firing rate of 3.05 million pounds (1.383 x 10 6 Kg) per day.
- Fig. 5 shows that the air flow to the left of line A in Fig. 5 is tertiary air and the air flow to the right is the sum of tertiary and quaternary air.
- the quaternary air was about 20% of the total air flow.
- Fig. 2 shows that using quaternary air, the total air demand of the boiler as determined by draft fan speed (rpm) is reduced about 10%.
- the operation to the left of the line A is without quaternary air and to the right of the line is with quaternary air.
- TRS Total reduced sulfur
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Abstract
Description
- The present invention relates to kraft recovery boiler furnaces.
- In the pulp and paper industries recovery boilers are used to burn the liquor produced in the kraft pulp making process. The function of a recovery boiler is to dispose of black liquor by burning the organic residue, generating steam, and converting the inorganic materials into a useful form. The current practice for introducing combustion air into the kraft recovery boilers involves injecting the air at two or more elevations in the furnace of the boiler. At the lowest elevation, air is injected through ports in all four walls. One of the major operational problems in kraft recovery boilers is the formation of deposits on the heat transfer surfaces in the upper part of the boiler. The most troublesome deposits occur in the superheater and steam generator. These deposits are formed mainly by particles that originate from the entrainment of some of the liquor spray particles in the air and flue gas stream. As the liquor spray particles fall towards the bottom of the furnace, they swell and lose weight, becoming less dense and easier to entrain. The most sensitive area for entrainment is at the char bed and the primary air entry level of the furnace. A second critical area is where there is a secondary level of air entry just above the char bed. The particles that are entrained are carried upward into the region above the black liquor injection nozzles by the upwardly flowing gases and are destined to be carried out of the furnace by the furnace exit gas or to be deposited in the superheater and steam generator.
- The production of a pulp mill is integrally linked to the capacity of its recovery boiler. Recently, pulp mills have been increasing their level of production through improved process management and mill upgrades. These improvements are pushing recovery boiler performance requirements beyond their original design capacity. As a result, recovery boilers limit pulp mill output in many cases.
- Almost all recovery boilers include three levels of combustion air known as primary, secondary and tertiary air as described in WO-A-92/16688. These air levels have different functions. The primary air is located at the lowest elevation in the furnace and supplies the air to burn the char on the surface of the char bed. The char is formed as liquor spray particles burn in the furnace. The char is partially burned in flight, as it falls to the bottom of the furnace, but the last part of the carbon in the char is burned out on top of the char bed that covers the bottom of the furnace. The primary air flow provides a bed geometry that allows recovered molten chemicals a suitable path for egress along the perimeter of the boiler and to the smelt outlet spouts. The floor of the boiler is sometimes sloped to facilitate this chemical removal.
- Secondary air enters the boiler above the primary air and below the black liquor injection nozzles. The secondary air assists in shaping the top of the char bed and supplies air to burn the combustible gases which rise from the bed. If the secondary air flow is too high, the flue gas resulting from the combustion of the volatiles will carry liquor droplets to the upper furnace plugging the boiler unit. Tertiary air is introduced to the boiler at an elevation above the black liquor injection guns and is used principally to burn the volatiles that are driven from the black liquor droplets as they pyrolyze and dry.
- There have been numerous attempts to improve boiler efficiency by implementing complex control systems that affect air flow into the combustion chamber. See, for example, US-A-5,121,700 to Blackwell; US-A-5,305,698 to Blackwell; US-A-4,940,004 to Jansen, and others.
- Besides the conventional means for the addition of primary, secondary and tertiary combustion air, it is suggested in WO-A-92/16688 to also include means for the addition of quaternary air at an appreciably higher level.
- WO-A-95/35409 is another document describing three horizontal levels of air. It proposes a constriction at a certain height in the furnace chamber.
- By contrast, WO-A-94/12829 rejects the approach of three horizontal levels, and instead proposes that the gas flow in the furnace is substantially all in a horizontal direction.
- We describe below, in addition to secondary and tertiary air injection ports, quaternary air injection ports located in the furnace in the vicinity of or at approximately the same elevation as the black liquor injection guns. While combustion dynamics and combustion reactions are complex and difficult to define, it is believed that air introduced at this level in the furnace provides a much more efficient mixing and combustion without solid particle carryover. In a preferred embodiment, the black liquor injection guns inject the black liquor into the furnace in a downwardly inclined direction. Still more preferably, the injection guns employ a splash plate which is oriented to cause the solid particles impinging the plate to flow downwardly in the furnace.
- In accordance with a first aspect of this invention, we provide a kraft recovery boiler furnace as described in
claim 1 comprising: a furnace chamber having four walls, a char bed, a plurality of black liquor injection guns on at least two of the walls of the furnace chamber for injecting droplets of black liquor into the furnace, and a plurality of primary air injection ports located at a lower elevation in the walls of said furnace for supplying primary air which burns char on the surface of the char bed, secondary air injection ports located between the primary air injection ports and the black liquor injection guns, the secondary air injection ports supplying secondary air which assists in shaping the top of the char bed and supplying air to burn combustible gases which rise from the char bed, and tertiary ports located at an elevation above the black liquor injection guns, the tertiary air injection ports supplying tertiary air principally to burn volatiles, the primary air ports and secondary air ports being vertically spaced from one another by areas in the furnace in which no air is introduced into the furnace: an injection site combustion zone is defined surrounding the black liquor injections guns; and a plurality of quaternary air injection ports are provided in the walls of said furnace between said secondary ports and said tertiary ports for introducing air into the injection site combustion zone, the quaternary air injection ports being vertically spaced from the secondary air ports and the tertiary air ports by areas in the furnace in which no air is introduced into the furnace, whereby air introduced by said quaternary air injection ports reacts with gaseous fuel released from the black liquor without substantially entraining the sold fuel from the black liquor. - The invention provides, in accordance with a second and alternative aspect thereof as described in
claim 10, a method of operating a Kraft recovery boiler furnace, the furnace comprising a furnace chamber having four walls, a char bed, a plurality of black liquor injection guns on at least two of the walls of the furnace chamber for injecting droplets of black liquor into the furnace, and a plurality of primary air injections ports located at a lower elevation in the walls of said furnace for supplying primary air which burns char on the surface of the char bed, secondary air injection ports located between the primary air injection ports and the black liquor injection guns, the secondary air injection ports supplying secondary air which assists in shaping the top of the char bed and supplying air to burn combustible gases which rise from the char bed, and tertiary ports located at an elevation above the black liquor injections guns, the tertiary air injection ports supplying tertiary air principally to burn the volatiles, the primary air ports and secondary air ports being vertically spaced from one another by areas in the furnace in which no air is introduced into the furnace; introducing air into an injection site combustion zone surrounding the black liquor injection guns, through a plurality of quaternary air injection ports being provided in the walls of said furnace between said secondary ports and said tertiary ports and being vertically spaced from the secondary air ports and the tertiary air ports by areas of the furnace in which no air is introduced into the furnace, whereby air introduced by said quaternary air injection ports reacts with gaseous fuel released from the black liquor without substantially entraining the sold fuel from the black liquor. - The term "quaternary air" is used herein to describe a new level of air introduction which results in increased combustion at substantially the level of the injection guns. Air previously introduced through the primary, secondary and/or tertiary air injection ports is, in part, redirected to the quaternary air injection sites. A zone of increased or intensified combustion is established around the black liquor injection guns. This zone is referred to herein as the "injection site combustion zone" and it generally extends a distance up to 4 feet (1.2192m) below and up to about 4 to 6 feet (1.2192 to 1.8288m) above the injection guns and more specifically from about 2 feet (0.6096m) below to about 4 feet (1.2192m) above the black liquor injection guns. The quaternary air ports will usually be located in this zone, but in some cases they may be located just above this zone if the air is directed downwardly into the zone. The injection site combustion zone is at an intermediate location to the combustion zones conventionally supplied by the secondary and tertiary air ports. In this zone, the quaternary air supports efficient combustion of the combustible gases driven from the drying black liquor droplets without entraining solid particles.
- One of the most important advantages achieved is reduced carryover and, hence, reduced plugging of the boiler tubes. This, in turn, improves boiler efficiency and reduces the frequency with which the boiler must be shut down for cleaning. The following related advantages have also been observed: significantly improved chemical conversion efficiency, significantly improved thermal efficiency, lower total reduced sulphur emissions, more stable combustion, lower auxiliary energy requirements, increased run time between shutdowns, lower capital costs, improved air quality.
- The invention is hereinafter more particularly described by way of example only with reference to the accompanying drawings, in which:
- Fig. 1 is a schematic drawing of an embodiment of boiler constructed in accordance with the present invention;
- Fig. 1A is a schematic drawing of an embodiment of a black liquor injection gun and quaternary air ports in accordance with the invention;
- Fig. 2 is a chart showing induced draft fan speed (rpm) at various times for a boiler operating first without and then with quaternary air injection ports;
- Fig. 3 is a chart showing primary air flow rates at various times for a boiler operating first without and then with quaternary air injection ports;
- Fig. 4 is a chart showing secondary air flow rates at various times for a boiler operating first without and then with quaternary air injection ports;
- Fig. 5 is a chart showing tertiary air at various times for a boiler operating first without and then with quaternary air injection ports; and
- Fig. 6 is a chart showing total reduced sulphur at various times for a boiler operating first without and then with quaternary air injection ports.
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- As shown in Fig. 1, a black liquor recovery unit, designated as 10, includes a
furnace chamber 12 having vertical front andrear walls vertical side walls 16 and at the lower end aninclined hearth 18. Moltensmelt removal spouts 20 are positioned at the lower end of the hearth for the discharge of molten chemical ash into asmelt collection tank 22. As the black liquor droplets are burned, the so-called black ash expands to a light low density particle which falls to the hearth floor to form the char bed. Incomplete combustion in the char bed causes carbon and carbon monoxide to act as reducing agents, thus converting sulfate and thiosulfate to sulfide. The heat is sufficient to melt the sodium salts, which filter through the char bed to the floor of the furnace. The smelt then flows by gravity through the water cooledspouts 20 to thesmelt collection tank 22. - The
walls water tubes 24 extending over the entire surface of the walls. Thetubes 24 may also extend through the floor, the hearth, and the roof of the furnace. Thesteam generator 38 generally comprises atube screen 40, asuper heater section 42, aboiler section 44 and aboiler outlet 46. The steam generator tubes are used for the generation of superheated steam. - As shown in Figs. 1 and 1A, black
liquor injection guns 26 are mounted in each of the four furnace walls and are inclined downwardly so as to inject the black liquor into the furnace in a downward direction. Each of theinjection guns 26 preferably includes asplash plate 28 attached to the spout of the injection guns oriented to cause the solid particles impinging the plate to flow downwardly into the furnace. While the furnace is illustrated with an injection gun in each of the furnace walls, those skilled in the art will appreciate that embodiments are also possible in which there is more than one gun present in each wall or in which there is one gun present in each of two opposing walls and no gun or a different number of guns present in the other walls. - An injection
site combustion zone 50 is created in thefurnace 12. Air is introduced into the furnace through four sets of ports designated from the bottom upward as primary 30, secondary 32, quaternary 34, and tertiary 36 air ports. As can be seen in Fig. 1A, theinjection guns 26 andair ports boiler tubes - The air ports are supplied with combustion air by wind boxes which are not shown but are essentially large box like ducts that are mounted on and surround the outside wall of the combustion chamber. Pressurized air flow is provided to the wind boxes by a fan. The amount of air supplied to the air ports can be regulated by dampers. Typically each set of air ports will be supplied from a separate wind box and fan but constructions are also feasible in which two or more sets of air ports are supplied from a common wind box. The air ports are positioned and operated or dampened to reduce the formation of deposits on the heat transfer surfaces and especially the superheater in the upper part of the boiler by minimizing gas velocity extremes including the chimney effect.
- The
primary air ports 30 are located conventionally a few feet (about 2 to 4 feet - 0.6096 to 1.2192m) above thehearth 18 and extend around the four walls to provide a large portion of the combustion air requirement. Theprimary air ports 30 also provide an air flow geometry that allows the formation of the char bed such that the molten smelt has a suitable path for egress along the perimeter of thehearth 18 to the smelt outlet spouts 20. The primary air ports are operated in a conventional manner. - The
secondary air ports 32 are positioned conventionally about 6 to 8 feet (1.8288 to 2.4384m) above theprimary air 30 and about 8 feet (2.4384m) below theinjection guns 26, and extend around the four walls of the furnace. The secondary air ports are operated to shape the top of the char bed and burn combustible gases which rise from the char bed in a conventional manner. With the use of the quaternary air ports, in many cases, the amount of air supplied to the furnace by means of the secondary air ports can be reduced. Typically, 18 to 25% of the total air requirement is injected through the secondary air ports when using quaternary air introduction as contrasted with flows of up to 40% when quaternary air ports are not used. -
Quaternary air ports 34 are preferably positioned substantially at the same level as or above theinjection guns 26 so as to supply air directly tozone 50. The number of quaternary air ports can vary but there will typically be one port located on each side of each of the black liquor injection guns. The air supplied by the quaternary air ports provides efficient mixing and combustion within the injectionsite combustion zone 50 of theboiler furnace 12. The quaternary air location is selected to concentrate the air more closely to where the fuel is located and provide better mixing and combustion, thus producing a more efficient burn in the combustion chamber, but without or with less particle entrainment. It is preferred that twoquaternary air ports 34 are positioned adjacent to each side of eachinjection gun 26. Typically, the quaternary air ports will be positioned a distance to the side of each gun of about 2 to 10 feet (0.6096 to 3.048m). Preferably thequaternary air ports 34 are positioned at substantially the same level as theinjection guns 26, but the position of the quaternary air injection ports can range from a distance of up to 5 feet (1.524m) above the guns to a distance no more than 0 to 4 feet (0 to 1.2192m) below the guns. Preferably the quaternary air injection ports are located at the same level as or at a higher level than the black liquor guns. The height of the quaternary air ports will depend on the design of the air ports and the injection guns. It has been found that when the guns include the splash plate shown in Fig 1A, the quaternary air ports can be located a small distance below the guns without producing particle entrainment. While the quaternary air ports are typically located in the injection site combustion zone, if the air ports are designed to inject the air downwardly into the injection site combustion zone, they can be located above the zone and direct air downwardly into the zone. - The function of the quaternary air ports is not to be confused with the function of the tertiary air ports which are located a greater distance above the injection guns than the quaternary air ports. It is believed that air injected through the quaternary air ports reacts more efficiently with the gaseous combustibles which are released from the black liquor as it burns because the quaternary air is supplied at a point at which the combustibles are more highly concentrated. By contrast, at the conventional level for tertiary air, the combustibles are believed to be diluted with noncombustible gases. However, there may be other theories for the improved reaction.
-
Tertiary air ports 36 are positioned about 10 to 14 feet (3.048 to 4.2672m) above theinjection guns 26. In Fig. 1 they are located on the front andrear walls injection guns 26, as the liquor is pyrolyzed and dried. About 30 to 40% of the total air requirement is injected through the combined tertiary and quaternary air ports. Typically, about 15% of the total air is injected through the tertiary air ports and about 15 to 30% of the total air is injected through the quaternary air ports. Thus, at least 30% ot the total air flow may be injected at or above the black liquor guns. This relocation or reallocation of the air flow is advantageous because it reduces the amount of oxygen at the lower elevations of the boiler where chemical reduction is favoured and increases it in the upper portions of the boiler where oxidation is desired. While such flow rates may have previously been achieved through increased tertiary air introduction without quaternary air introduction, it was probably not as efficient and involved more excess air than quaternary air introduction as described herein. - The black liquor injection guns are preferably equipped with a splash plate which directs the black liquor droplets downward. The
injection guns 26 and angle of the splash plate are selected to produce a downward particle flow and to minimize particle entrainment. Combustion of the black liquor is accompanied by a volume change caused by gas expansion. This expansion can lead to particle entrainment. The splash plates appear to be very effective in preventing entrainment in the presence of the quaternary air. The black liquor is supplied at a concentration of about 65 to 80% solids. - The addition of the
quaternary air ports 34 affords the opportunity to reducesecondary air 32 by performing some of the secondary air functions at the quaternary air level. In some cases it has been possible to block approximately seventy percent of the secondary air dampers. Preferably, the secondary air dampers are arranged as shown in Fig. 1. Secondary air dampers marked A are closed, secondary air dampers marked B are open, and secondary air dampers marked C are 50% open. - In a typical embodiment, the operation of the furnace is as follows: The black liquor is fed through the injection guns at a rate of about 275 US gal/min (1041 litres/min) and is introduced at concentrations of about 70% solids. The primary air is introduced through primary air ducts on each of the front and
rear furnace walls side walls 16. The primary air is fed at a rate of 45% total air flow. The secondary air is introduced through the secondary air ducts on each of the furnace walls as described above. The secondary air is fed at a rate of 25% of total air. The quaternary air is introduced through two quaternary air ducts on each side of the black liquor injection guns, at a rate of about 15% of total air. The quaternary air flow rate will typically vary from 15 to 35% of total air. The tertiary air can be introduced through tertiary air ducts on both the front and rear walls of the furnace, at a rate of 15 to 30% of total air which is sufficient to complete combustion of the gases released from the pyrolyzing liquor. - Figs. 2-6 are operating charts respectively showing induced draft fan speed, primary air flow rate, secondary air flow rate, combined tertiary and quaternary air flow rate and total reduced sulfur for a boiler which was initially operated without quaternary air and subsequently with quaternary air. The boiler is a Babcock and Wilcox boiler having a design pressure of 1625 psig (1.120 x 107N/m2 gauge) and a designed liquid firing rate of 2.4 million pounds (1.089 x 106Kg) per day dry solids operating at a firing rate of 3.05 million pounds (1.383 x 106Kg) per day. The increase in the air flow rate shown on the right hand side of line A in Fig. 5 as compared with the left side is the quaternary air flow. Specifically, the air flow to the left of line A in Fig. 5 is tertiary air and the air flow to the right is the sum of tertiary and quaternary air. The quaternary air was about 20% of the total air flow. Fig. 2 shows that using quaternary air, the total air demand of the boiler as determined by draft fan speed (rpm) is reduced about 10%. The operation to the left of the line A is without quaternary air and to the right of the line is with quaternary air. A comparison of the operation to the right and left of line A in Figs. 3 and 4 shows that primary air was not substantially affected by the use of quaternary air but secondary air flow can be reduced about 20 to 30% of the total air. Total reduced sulfur (TRS) shown is a measure of the efficiency of the boiler. Fig. 6 shows that TRS (ppm) is higher and more variable without quaternary air flow.
Claims (14)
- A kraft recovery boiler furnace (10) comprising: a furnace chamber (12) having four walls (14, 15, 16), a char bed, a plurality of black liquor injection guns (26) on at least two of the walls (14, 15, 16) of the furnace chamber (12) for injecting droplets of black liquor into the furnace, and a plurality of primary air injection ports (30) located at a lower elevation in the walls of said furnace for supplying primary air which burns char on the surface of the char bed, secondary air injection ports (32) located between the primary air injection ports (30) and the black liquor injection guns (26), the secondary air injection ports (32) supplying secondary air which assists in shaping the top of the char bed and supplying air to burn combustible gases which rise from the char bed, tertiary ports (36) located at an elevation above the black liquor injection guns (26), the tertiary air injection ports (36) supplying tertiary air principally to burn volatiles, and a plurality of quaternary air injection ports (34) provided in the walls of said furnace, the primary air ports (30) and secondary air ports (32) being vertically spaced from one another by areas in the furnace in which no air is introduced into the furnace; characterised in that:an injection site combustion zone (50) is defined surrounding the black liquor injections guns (26); and saidplurality of quaternary air injection ports (34) are provided between said secondary ports (32) and said tertiary ports (36) for introducing air into the injection site combustion zone, the quaternary air injection ports (34) being vertically spaced from the secondary air ports (32) and the tertiary air ports (36) by areas in the furnace in which no air is introduced into the furnace,whereby air introduced by said quaternary air injection ports (34) reacts with gaseous fuel released from the black liquor without substantially entraining the solid fuel from the black liquor.
- A furnace according to Claim 1, further characterized in that the black liquor injection guns (26) are arranged to inject black liquor into said furnace in a downwardly inclined direction.
- A furnace according to Claim 1 or Claim 2, further characterized in that the black liquor injection guns (26) include a splash plate (28) for downwardly deflecting liquor injected into the furnace through the gun.
- A furnace according to Claims 1, 2 or 3, further characterized in that the black liquor injection guns (26) are adapted to inject black liquor containing about 68 to 80% solids.
- A furnace according to any preceding claim, further characterized in that the flow of air through said quaternary air injection guns (34) and said secondary and/or tertiary injection guns is adjusted to prevent the chimney effect.
- A furnace according to any preceding Claim, further characterized in that said air injection ports are adjusted such that about 18 to 25% of the total amount of air injected into said furnace is injected through the secondary air injection ports (32).
- A furnace according to any preceding Claim, further characterized in that the air injection ports are adjusted such that about 30 to 40% of the total amount of air injected into the furnace is injected through the tertiary and quaternary air injection ports.
- A furnace according to any preceding claim, further characterized in that said injection site combustion zone (50) extends a distance not substantially greater than 6 feet 1.8288m) above and 4 feet (1.2192m) below said black liquor injection guns.
- A furnace according to any preceding claim, further characterized in that there is one black liquor injection gun (26) on two opposing walls of said furnace, and preferably in each wall of said furnace, and in that there are two quaternary air injection ports (34) located on each side of said black liquor injection guns (26).
- A method of operating a Kraft recovery boiler furnace (10), the furnace (10) comprising: a furnace chamber (12) having four walls (14, 15, 16), a char bed, a plurality of black liquor injection guns (26) on at least two of the walls (14, 15, 16) of the furnace chamber (12) for injecting droplets of black liquor into the furnace, and a plurality of primary air injections ports (30) located at a lower elevation in the walls of said furnace for supplying primary air which burns char on the surface of the char bed, secondary air injection ports (32) located between the primary air injection ports (30) and the black liquor injection guns (26), the secondary air injection ports (32) supplying secondary air which assists in shaping the top of the char bed and supplying air to burn combustible gases which rise from the char bed, tertiary ports (36) located at an elevation above the black liquor injections guns (26), the tertiary air injection ports (36) supplying tertiary air principally to burn the volatiles, and a plurality of quaternary air injection ports (34) provided in the walls of said furnace, the primary air ports (30) and secondary air ports (32) being vertically spaced from one another by areas in the furnace in which no air is introduced into the furnace;
the method being characterised by comprising:introducing air into an injection site combustion zone (50) surrounding the black liquor injection guns (26), through said plurality of quaternary air injection ports (34) being provided between said secondary ports (32) and said tertiary ports (36) and being vertically spaced from the secondary air ports (32) and the tertiary air ports (36) by areas of the furnace in which no air is introduced into the furnace,whereby air introduced by said quaternary air injection ports (34) reacts with gaseous fuel released from the black liquor without substantially entraining the sold fuel from the black liquor. - A method according to Claim 10, wherein about 30 to 40% of the total amount of air injected into the furnace is injected through said tertiary and said quaternary air injection ports.
- A method according to Claims 10 or 11, wherein said method includes the step of injecting black liquor into said furnace in a downwardly inclined direction, preferably below the quaternary air injection ports (34).
- A method according to Claims 10, 11 or 12, wherein the flow of air into the furnace is adjusted to minimize entrainment of the black liquor and to prevent the chimney effect.
- A method according to any of Claims 10 to 13, wherein the furnace includes a bed of combustibles which burns and creates gaseous fuel which exits upwardly through said chamber (12).
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US526172 | 1995-09-11 | ||
US08/526,172 US5715763A (en) | 1995-09-11 | 1995-09-11 | Combustion system for a black liquor recovery boiler |
Publications (2)
Publication Number | Publication Date |
---|---|
EP0761871A1 EP0761871A1 (en) | 1997-03-12 |
EP0761871B1 true EP0761871B1 (en) | 2001-12-12 |
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Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
EP96306596A Expired - Lifetime EP0761871B1 (en) | 1995-09-11 | 1996-09-11 | Kraft recovery boiler furnace |
Country Status (6)
Country | Link |
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US (1) | US5715763A (en) |
EP (1) | EP0761871B1 (en) |
JP (1) | JPH09188985A (en) |
AT (1) | ATE210755T1 (en) |
CA (1) | CA2184875A1 (en) |
DE (1) | DE69617839T2 (en) |
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CA2220325C (en) * | 1996-11-22 | 2003-01-14 | Mitsubishi Heavy Industries, Ltd. | Recovery boiler |
US5992337A (en) * | 1997-09-26 | 1999-11-30 | Air Liquide America Corporation | Methods of improving productivity of black liquor recovery boilers |
US6237513B1 (en) | 1998-12-21 | 2001-05-29 | ABB ALSTROM POWER Inc. | Fuel and air compartment arrangement NOx tangential firing system |
US6192810B1 (en) * | 1999-05-10 | 2001-02-27 | Bta Drayton | Laminar flow air register |
US6302039B1 (en) * | 1999-08-25 | 2001-10-16 | Boiler Island Air Systems Inc. | Method and apparatus for further improving fluid flow and gas mixing in boilers |
WO2001031119A1 (en) * | 1999-10-22 | 2001-05-03 | Pulp And Paper Research Institute Of Canada | Method and apparatus for optimizing the addition of combustion air in a recovery boiler |
CA2443640C (en) | 2001-04-06 | 2009-06-23 | Andritz Oy | Combustion air system for recovery boilers, burning spent liquors from pulping processes |
FI120550B (en) | 2002-10-10 | 2009-11-30 | Metso Power Oy | Boiler fuel air supply system |
FI120364B (en) * | 2002-11-01 | 2009-09-30 | Kvaerner Power Oy | A black liquor gun |
ATE554220T1 (en) * | 2004-10-14 | 2012-05-15 | Andritz Oy | COMBUSTION AIR SYSTEM FOR RECOVERY BOILER, COMBUSTION OF USED CAUSES FROM COOKING PROCESSES |
US7735435B2 (en) * | 2006-05-24 | 2010-06-15 | Diamond Power International, Inc. | Apparatus for cleaning a smelt spout of a combustion device |
FI122982B (en) * | 2006-06-21 | 2012-09-28 | Metso Power Oy | Method for reducing nitrogen oxide emissions from a recovery boiler and a recovery boiler |
US8607718B2 (en) * | 2007-03-28 | 2013-12-17 | Babcock & Wilcox Power Generation Group, Inc. | Recovery boiler combustion air system with intermediate air ports vertically aligned with multiple levels of tertiary air ports |
FI120057B (en) * | 2007-07-13 | 2009-06-15 | Andritz Oy | Apparatus and method for cleaning and cooling a spray gun |
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CN109690265A (en) * | 2016-08-04 | 2019-04-26 | 燃料技术公司 | Sediment monitoring for black liquor recovery boilers |
US11008704B2 (en) | 2017-08-01 | 2021-05-18 | Fuel Tech, Inc. | Deposit control for a black liquor recovery boiler |
JP7051449B2 (en) * | 2018-01-12 | 2022-04-11 | 三菱重工業株式会社 | Control method of black liquor combustion device, soda recovery boiler equipped with it, and black liquor combustion device |
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US2594267A (en) * | 1947-02-19 | 1952-04-22 | Babcock & Wilcox Co | Chemical furnace |
US2789881A (en) * | 1953-07-16 | 1957-04-23 | Combustion Eng | Method of operating a chemical recovery smelter furnace |
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US4359950A (en) * | 1980-10-03 | 1982-11-23 | Measurex Corporation | Method for maximizing the reduction efficiency of a recovery boiler |
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US5305698A (en) * | 1989-04-04 | 1994-04-26 | Blackwell Brian R | Method and apparatus for improving fluid flow and gas mixing in boilers |
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US5001992A (en) * | 1989-10-30 | 1991-03-26 | Anthony-Ross Company | Apparatus for regulating air flow through an air port of a chemical recovery furnace |
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US5044327A (en) * | 1990-09-14 | 1991-09-03 | The Babcock & Wilcox Company | Air/burner port |
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SE9102546L (en) * | 1991-09-05 | 1992-09-07 | Goetaverken Energy Ab | PRESENTATION OF WASTE WASTE |
US5368471A (en) * | 1991-11-20 | 1994-11-29 | The Babcock & Wilcox Company | Method and apparatus for use in monitoring and controlling a black liquor recovery furnace |
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FI925305A0 (en) * | 1992-11-23 | 1992-11-23 | Polyrec Ab Oy | PROCEDURE FOR MEASUREMENT OF INSPECTION OF FUERBRAENNINGSLUFT I EN ELDSTAD |
SE9300199L (en) * | 1993-01-25 | 1994-07-26 | Kvaerner Pulping Tech | Method for recycling cellulosic liquids |
SE502327C2 (en) * | 1993-12-29 | 1995-10-02 | Kvaerner Pulping Tech | Soda boiler for combustion of liquids |
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SE9400930L (en) * | 1994-03-21 | 1995-09-22 | Kvaerner Pulping Tech | Process for combustion of sulfite liquor containing magnesium or ammonium and boiler for combustion of sulfite liquor according to the method |
SE503453C2 (en) * | 1994-06-20 | 1996-06-17 | Kvaerner Pulping Tech | Soda boiler having a secondary air supply which causes a rotation of the combustion gases and a constriction of the boiler above the liquor injection and a method of such boiler |
US5551354A (en) * | 1995-08-23 | 1996-09-03 | The Babcock & Wilcox Company | Biased flow directional liquor nozzle |
-
1995
- 1995-09-11 US US08/526,172 patent/US5715763A/en not_active Expired - Fee Related
-
1996
- 1996-09-05 CA CA002184875A patent/CA2184875A1/en not_active Abandoned
- 1996-09-11 EP EP96306596A patent/EP0761871B1/en not_active Expired - Lifetime
- 1996-09-11 DE DE69617839T patent/DE69617839T2/en not_active Expired - Fee Related
- 1996-09-11 AT AT96306596T patent/ATE210755T1/en not_active IP Right Cessation
- 1996-09-11 JP JP8240792A patent/JPH09188985A/en not_active Ceased
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JPH09188985A (en) | 1997-07-22 |
DE69617839D1 (en) | 2002-01-24 |
CA2184875A1 (en) | 1997-03-12 |
US5715763A (en) | 1998-02-10 |
DE69617839T2 (en) | 2002-06-20 |
ATE210755T1 (en) | 2001-12-15 |
EP0761871A1 (en) | 1997-03-12 |
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